Blake D. Sherwin
University of California, Berkeley
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Featured researches published by Blake D. Sherwin.
Physical Review Letters | 2011
Sudeep Das; Blake D. Sherwin; Paula Aguirre; J. W. Appel; J. Richard Bond; C. Sofia Carvalho; Mark J. Devlin; Joanna Dunkley; Rolando Dünner; Thomas Essinger-Hileman; Joseph W. Fowler; Amir Hajian; M. Halpern; Matthew Hasselfield; Adam D. Hincks; Renée Hlozek; K. M. Huffenberger; John P. Hughes; K. D. Irwin; Jeff Klein; Arthur Kosowsky; Robert H. Lupton; Tobias A. Marriage; Danica Marsden; F. Menanteau; Kavilan Moodley; Michael D. Niemack; Michael R. Nolta; Lyman A. Page; Lucas Parker
We report the first detection of the gravitational lensing of the cosmic microwave background through a measurement of the four-point correlation function in the temperature maps made by the Atacama Cosmology Telescope. We verify our detection by calculating the levels of potential contaminants and performing a number of null tests. The resulting convergence power spectrum at 2° angular scales measures the amplitude of matter density fluctuations on comoving length scales of around 100 Mpc at redshifts around 0.5 to 3. The measured amplitude of the signal agrees with Lambda cold dark matter cosmology predictions. Since the amplitude of the convergence power spectrum scales as the square of the amplitude of the density fluctuations, the 4σ detection of the lensing signal measures the amplitude of density fluctuations to 12%.
The Astrophysical Journal | 2011
Sudeep Das; Tobias A. Marriage; Peter A. R. Ade; Paula Aguirre; M. Amiri; J. W. Appel; L. Felipe Barrientos; E. S. Battistelli; John R. Bond; Ben Brown; B. Burger; J. A. Chervenak; Mark J. Devlin; Simon R. Dicker; W. Bertrand Doriese; Joanna Dunkley; Rolando Dünner; Thomas Essinger-Hileman; R. P. Fisher; Joseph W. Fowler; Amir Hajian; M. Halpern; Matthew Hasselfield; C. Hernández-Monteagudo; G. C. Hilton; Matt Hilton; Adam D. Hincks; Renée Hlozek; K. M. Huffenberger; David H. Hughes
We present measurements of the cosmic microwave background (CMB) power spectrum made by the Atacama Cosmology Telescope at 148 GHz and 218 GHz, as well as the cross-frequency spectrum between the two channels. Our results clearly show the second through the seventh acoustic peaks in the CMB power spectrum. The measurements of these higher-order peaks provide an additional test of the ΛCDM cosmological model. At l>3000, we detect power in excess of the primary anisotropy spectrum of the CMB. At lower multipoles 500 < l < 3000, we find evidence for gravitational lensing of the CMB in the power spectrum at the 2.8σ level. We also detect a low level of Galactic dust in our maps, which demonstrates that we can recover known faint, diffuse signals.
arXiv: Cosmology and Nongalactic Astrophysics | 2016
Kevork N. Abazajian; Peter Adshead; Z. Ahmed; S. W. Allen; David Alonso; K. Arnold; C. Baccigalupi; J. G. Bartlett; Nicholas Battaglia; B. A. Benson; C. Bischoff; J. Borrill; Victor Buza; Erminia Calabrese; Robert R. Caldwell; J. E. Carlstrom; C. L. Chang; T. M. Crawford; Francis-Yan Cyr-Racine; Francesco De Bernardis; Tijmen de Haan; Serego Alighieri Sperello di; Joanna Dunkley; Cora Dvorkin; J. Errard; Giulio Fabbian; Stephen M. Feeney; Simone Ferraro; Jeffrey P. Filippini; Raphael Flauger
This book lays out the scientific goals to be addressed by the next-generation ground-based cosmic microwave background experiment, CMB-S4, envisioned to consist of dedicated telescopes at the South Pole, the high Chilean Atacama plateau and possibly a northern hemisphere site, all equipped with new superconducting cameras. CMB-S4 will dramatically advance cosmological studies by crossing critical thresholds in the search for the B-mode polarization signature of primordial gravitational waves, in the determination of the number and masses of the neutrinos, in the search for evidence of new light relics, in constraining the nature of dark energy, and in testing general relativity on large scales.
Physical Review Letters | 2011
Blake D. Sherwin; Joanna Dunkley; Sudeep Das; J. W. Appel; J. Richard Bond; C. Sofia Carvalho; Mark J. Devlin; Rolando Dünner; Thomas Essinger-Hileman; Joseph W. Fowler; Amir Hajian; M. Halpern; Matthew Hasselfield; Adam D. Hincks; Renée Hlozek; John P. Hughes; K. D. Irwin; Jeff Klein; Arthur Kosowsky; Tobias A. Marriage; Danica Marsden; Kavilan Moodley; F. Menanteau; Michael D. Niemack; Michael R. Nolta; Lyman A. Page; Lucas Parker; Erik D. Reese; Benjamin L. Schmitt; Neelima Sehgal
For the first time, measurements of the cosmic microwave background radiation (CMB) alone favor cosmologies with w = -1 dark energy over models without dark energy at a 3.2-sigma level. We demonstrate this by combining the CMB lensing deflection power spectrum from the Atacama Cosmology Telescope with temperature and polarization power spectra from the Wilkinson Microwave Anisotropy Probe. The lensing data break the geometric degeneracy of different cosmological models with similar CMB temperature power spectra. Our CMB-only measurement of the dark energy density Ω(Λ) confirms other measurements from supernovae, galaxy clusters, and baryon acoustic oscillations, and demonstrates the power of CMB lensing as a new cosmological tool.
Physical Review Letters | 2014
Peter A. R. Ade; Y. Akiba; A. E. Anthony; K. Arnold; M. Atlas; D. Barron; D. Boettger; J. Borrill; Sydney Chapman; Y. Chinone; M. Dobbs; T. Elleflot; J. Errard; G. Fabbian; Chang Feng; D. Flanigan; A. Gilbert; William F. Grainger; N. W. Halverson; M. Hasegawa; K. Hattori; M. Hazumi; W. L. Holzapfel; Y. Hori; J. Howard; P. Hyland; Y. Inoue; G. Jaehnig; A. H. Jaffe; Brian Keating
Gravitational lensing due to the large-scale distribution of matter in the cosmos distorts the primordial cosmic microwave background (CMB) and thereby induces new, small-scale B-mode polarization. This signal carries detailed information about the distribution of all the gravitating matter between the observer and CMB last scattering surface. We report the first direct evidence for polarization lensing based on purely CMB information, from using the four-point correlations of even- and odd-parity E- and B-mode polarization mapped over ∼30 square degrees of the sky measured by the POLARBEAR experiment. These data were analyzed using a blind analysis framework and checked for spurious systematic contamination using null tests and simulations. Evidence for the signal of polarization lensing and lensing B modes is found at 4.2σ (stat+sys) significance. The amplitude of matter fluctuations is measured with a precision of 27%, and is found to be consistent with the Lambda cold dark matter cosmological model. This measurement demonstrates a new technique, capable of mapping all gravitating matter in the Universe, sensitive to the sum of neutrino masses, and essential for cleaning the lensing B-mode signal in searches for primordial gravitational waves.
Physical Review D | 2013
Erminia Calabrese; Renée Hlozek; Nick Battaglia; E. S. Battistelli; J. Richard Bond; Jens Chluba; Devin Crichton; Sudeep Das; Mark J. Devlin; Joanna Dunkley; Rolando Dünner; M. Farhang; Megan B. Gralla; Amir Hajian; M. Halpern; Matthew Hasselfield; Adam D. Hincks; K. D. Irwin; Arthur Kosowsky; Thibaut Louis; Tobias A. Marriage; Kavilan Moodley; Laura Newburgh; Michael D. Niemack; Michael R. Nolta; Lyman A. Page; Neelima Sehgal; Blake D. Sherwin; J. L. Sievers; Cristóbal Sifón
Erminia Calabrese, Renée A. Hlozek, Nick Battaglia, Elia S. Battistelli, J. Richard Bond, Jens Chluba, Devin Crichton, Sudeep Das, 8 Mark J. Devlin, Joanna Dunkley, Rolando Dünner, Marzieh Farhang, 11 Megan B. Gralla, Amir Hajian, Mark Halpern, Matthew Hasselfield, 12 Adam D. Hincks, Kent D. Irwin, Arthur Kosowsky, Thibaut Louis, Tobias A. Marriage, 2, 15 Kavilan Moodley, Laura Newburgh, Michael D. Niemack, 13, 17 Michael R. Nolta, Lyman A. Page, Neelima Sehgal, Blake D. Sherwin, Jonathan L. Sievers, Cristóbal Sifón, David N. Spergel, Suzanne T. Staggs, Eric R. Switzer, and Edward J. Wollack Sub-department of Astrophysics, University of Oxford, Keble Road, Oxford OX1 3RH, UK Dept. of Astrophysical Sciences, Peyton Hall, Princeton University, Princeton, NJ 08544, USA Department of Physics, Carnegie Mellon University, Pittsburgh, PA 15213, USA Department of Physics, University of Rome ‘Sapienza’, Piazzale Aldo Moro 5, I-00185 Rome, Italy CITA, University of Toronto, Toronto, ON M5S 3H8, Canada Johns Hopkins University, 3400 N. Charles St., Baltimore, MD 21218-2686, USA High Energy Physics Division, Argonne National Laboratory, 9700 S Cass Avenue, Lemont, IL 60439, USA BCCP, LBL and Department of Physics, University of California, Berkeley, CA 94720, USA Department of Physics and Astronomy, University of Pennsylvania, 209 South 33rd St., Philadelphia,PA 19104,USA Departamento de Astronomı́a y Astrof́ısica, Pontifićıa Universidad Católica de Chile, Casilla 306, Santiago 22, Chile Department of Astronomy and Astrophysics, University of Toronto, 50 St George , Toronto, ON, M5S 3H4 Department of Physics and Astronomy, University of British Columbia, Vancouver, BC V6T 1Z4, Canada NIST Quantum Devices Group, 325 Broadway Mailcode 817.03, Boulder, CO 80305, USA Department of Physics and Astronomy, University of Pittsburgh, Pittsburgh, PA 15260, USA Joseph Henry Laboratories of Physics, Jadwin Hall, Princeton University, Princeton, NJ 08544,USA Astrophysics and Cosmology Research Unit, School of Mathematical Sciences, University of KwaZulu-Natal, Durban, 4041, South Africa Department of Physics, Cornell University, Ithaca, NY, USA 14853 Physics and Astronomy Department, Stony Brook University, Stony Brook, NY 11794-3800, USA Leiden Observatory, Leiden University, PO Box 9513, NL-2300 RA Leiden, Netherlands NASA/Goddard Space Flight Center, Greenbelt, MD 20771, USA
The Astrophysical Journal | 2011
Tobias A. Marriage; Jean Baptiste Juin; Yen-Ting Lin; Danica Marsden; Michael R. Nolta; Bruce Partridge; Peter A. R. Ade; Paula Aguirre; M. Amiri; J. W. Appel; L. Felipe Barrientos; E. S. Battistelli; John R. Bond; Ben Brown; B. Burger; J. A. Chervenak; Sudeep Das; Mark J. Devlin; Simon R. Dicker; W. Bertrand Doriese; Joanna Dunkley; Rolando Dünner; Thomas Essinger-Hileman; R. P. Fisher; Joseph W. Fowler; Amir Hajian; M. Halpern; Matthew Hasselfield; C. Hernández-Monteagudo; G. C. Hilton
We report on extragalactic sources detected in a 455 deg2 map of the southern sky made with data at a frequency of 148 GHz from the Atacama Cosmology Telescope (ACT) 2008 observing season. We provide a catalog of 157 sources with flux densities spanning two orders of magnitude: from 15 mJy to 1500 mJy. Comparison to other catalogs shows that 98% of the ACT detections correspond to sources detected at lower radio frequencies. Three of the sources appear to be associated with the brightest cluster galaxies of low-redshift X-ray-selected galaxy clusters. Estimates of the radio to millimeter-wave spectral indices and differential counts of the sources further bolster the hypothesis that they are nearly all radio sources, and that their emission is not dominated by re-emission from warm dust. In a bright (>50 mJy) 148 GHz selected sample with complete cross-identifications from the Australia Telescope 20 GHz survey, we observe an average steepening of the spectra between 5, 20, and 148 GHz with median spectral indices of α5-20 = –0.07 ± 0.06, α20-148 = –0.39 ± 0.04, and α5-148 = –0.20 ± 0.03. When the measured spectral indices are taken into account, the 148 GHz differential source counts are consistent with previous measurements at 30 GHz in the context of a source count model dominated by radio sources. Extrapolating with an appropriately rescaled model for the radio source counts, the Poisson contribution to the spatial power spectrum from synchrotron-dominated sources with flux density less than 20 mJy is C Sync = (2.8 ± 0.3) × 10–6μK2.
Physical Review D | 2012
Blake D. Sherwin; Matias Zaldarriaga
A shift of the baryon acoustic oscillation (BAO) scale to smaller values than predicted by linear theory was observed in simulations. In this paper, we try to provide an intuitive physical understanding of why this shift occurs, explaining in more pedagogical detail earlier perturbation theory calculations. We find that the shift is mainly due to the following physical effect. A measurement of the BAO scale is more sensitive to regions with long wavelength overdensities than underdensities, because (due to non-linear growth and bias) these overdense regions contain larger fluctuations and more tracers and hence contribute more to the total correlation function. In overdense regions the BAO scale shrinks because such regions locally behave as positively curved closed universes, and hence a smaller scale than predicted by linear theory is measured in the total correlation function. Other effects which also contribute to the shift are briefly discussed. We provide approximate analytic expressions for the non-linear shift including a brief discussion of biased tracers and explain why reconstruction should entirely reverse the shift. Our expressions and findings are in agreement with simulation results, and confirm that non-linear shifts should not be problematic for next-generation BAO measurements.
Physical Review D | 2012
Blake D. Sherwin; Sudeep Das; Amir Hajian; Graeme E. Addison; J. Richard Bond; Devin Crichton; Mark J. Devlin; Joanna Dunkley; Megan B. Gralla; M. Halpern; J. Colin Hill; Adam D. Hincks; John P. Hughes; K. M. Huffenberger; Renée Hlozek; Arthur Kosowsky; Thibaut Louis; Tobias A. Marriage; Danica Marsden; Felipe Menanteau; Kavilan Moodley; Michael D. Niemack; Lyman A. Page; Erik D. Reese; Neelima Sehgal; Jon Sievers; Cristóbal Sifón; David N. Spergel; Suzanne T. Staggs; Eric R. Switzer
We measure the cross-correlation of Atacama cosmology telescope cosmic microwave background (CMB) lensing convergence maps with quasar maps made from the Sloan Digital Sky Survey DR8 SDSS-XDQSO photometric catalog. The CMB lensing quasar cross-power spectrum is detected for the first time at a significance of 3.8 sigma, which directly confirms that the quasar distribution traces the mass distribution at high redshifts z > 1. Our detection passes a number of null tests and systematic checks. Using this cross-power spectrum, we measure the amplitude of the linear quasar bias assuming a template for its redshift dependence, and find the amplitude to be consistent with an earlier measurement from clustering; at redshift z ap 1.4, the peak of the distribution of quasars in our maps, our measurement corresponds to a bias of b = 2.5 +/- 0.6. With the signal-to-noise ratio on CMB lensing measurements likely to improve by an order of magnitude over the next few years, our results demonstrate the potential of CMB lensing crosscorrelations to probe astrophysics at high redshifts.
The Astrophysical Journal | 2015
Alexander van Engelen; Blake D. Sherwin; Neelima Sehgal; Graeme E. Addison; Rupert Allison; Nick Battaglia; Francesco De Bernardis; J. Richard Bond; Erminia Calabrese; Kevin Coughlin; Devin Crichton; Rahul Datta; Mark J. Devlin; Joanna Dunkley; Rolando Dünner; Patricio A. Gallardo; Emily Grace; Megan B. Gralla; Amir Hajian; Matthew Hasselfield; S. Henderson; J. Colin Hill; Matt Hilton; Adam D. Hincks; Renée Hlozek; K. M. Huffenberger; John P. Hughes; Brian J. Koopman; Arthur Kosowsky; Thibaut Louis
We present a measurement of the gravitational lensing of the Cosmic Microwave Background (CMB) temperature and polarization fields obtained by cross-correlating the reconstructed convergence signal from the first season of Atacama Cosmology Telescope Polarimeter data at 146 GHz with Cosmic Infrared Background (CIB) fluctuations measured using the Planck satellite. Using an effective overlap area of 92.7 square degrees, we detect gravitational lensing of the CMB polarization by large-scale structure at a statistical significance of